Suppose 36% of a remote mountain village cannot taste PTC and must, therefore, be homozygous recessive (aa) for the PTC non-taster allele. If this population conforms to Hardy-Weinberg expectations for this gene, what percentage of the population must be homozygous (AA) for the PTC taster allele?

Question

Biology

Jayvon Rasmussen

19 October, 19:57

Suppose 36% of a remote mountain village cannot taste PTC and must, therefore, be homozygous recessive (aa) for the PTC non-taster allele. If this population conforms to Hardy-Weinberg expectations for this gene, what percentage of the population must be homozygous (AA) for the PTC taster allele?

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Hodge · Answer 1

16%

Explanation:

The frequency of homozygous recessive genotype in the given population = 36% or 0.36

So, the frequency of the recessive non-taster allele in the given population would be = square root of 0.36 = 0.6

Since the population is in HWE, the frequency of the dominant allele for this locus in the population = 1 - frequency of the recessive allele = 1-0.6 = 0.4

Therefore, the frequency of the homozygous dominant genotype in the given population = 0.4 x 0.4 = 0.16 or 16%